mapping0.c 30 KB

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  1. /********************************************************************
  2. * *
  3. * THIS FILE IS PART OF THE OggVorbis SOFTWARE CODEC SOURCE CODE. *
  4. * USE, DISTRIBUTION AND REPRODUCTION OF THIS LIBRARY SOURCE IS *
  5. * GOVERNED BY A BSD-STYLE SOURCE LICENSE INCLUDED WITH THIS SOURCE *
  6. * IN 'COPYING'. PLEASE READ THESE TERMS BEFORE DISTRIBUTING. *
  7. * *
  8. * THE OggVorbis SOURCE CODE IS (C) COPYRIGHT 1994-2007 *
  9. * by the Xiph.Org Foundation http://www.xiph.org/ *
  10. * *
  11. ********************************************************************
  12. function: channel mapping 0 implementation
  13. last mod: $Id$
  14. ********************************************************************/
  15. #include <stdlib.h>
  16. #include <stdio.h>
  17. #include <string.h>
  18. #include <math.h>
  19. #include <ogg/ogg.h>
  20. #include "vorbis/codec.h"
  21. #include "codec_internal.h"
  22. #include "codebook.h"
  23. #include "window.h"
  24. #include "registry.h"
  25. #include "psy.h"
  26. #include "misc.h"
  27. /* simplistic, wasteful way of doing this (unique lookup for each
  28. mode/submapping); there should be a central repository for
  29. identical lookups. That will require minor work, so I'm putting it
  30. off as low priority.
  31. Why a lookup for each backend in a given mode? Because the
  32. blocksize is set by the mode, and low backend lookups may require
  33. parameters from other areas of the mode/mapping */
  34. static void mapping0_free_info(vorbis_info_mapping *i){
  35. vorbis_info_mapping0 *info=(vorbis_info_mapping0 *)i;
  36. if(info){
  37. memset(info,0,sizeof(*info));
  38. _ogg_free(info);
  39. }
  40. }
  41. static int ilog(unsigned int v){
  42. int ret=0;
  43. if(v)--v;
  44. while(v){
  45. ret++;
  46. v>>=1;
  47. }
  48. return(ret);
  49. }
  50. static void mapping0_pack(vorbis_info *vi,vorbis_info_mapping *vm,
  51. oggpack_buffer *opb){
  52. int i;
  53. vorbis_info_mapping0 *info=(vorbis_info_mapping0 *)vm;
  54. /* another 'we meant to do it this way' hack... up to beta 4, we
  55. packed 4 binary zeros here to signify one submapping in use. We
  56. now redefine that to mean four bitflags that indicate use of
  57. deeper features; bit0:submappings, bit1:coupling,
  58. bit2,3:reserved. This is backward compatable with all actual uses
  59. of the beta code. */
  60. if(info->submaps>1){
  61. oggpack_write(opb,1,1);
  62. oggpack_write(opb,info->submaps-1,4);
  63. }else
  64. oggpack_write(opb,0,1);
  65. if(info->coupling_steps>0){
  66. oggpack_write(opb,1,1);
  67. oggpack_write(opb,info->coupling_steps-1,8);
  68. for(i=0;i<info->coupling_steps;i++){
  69. oggpack_write(opb,info->coupling_mag[i],ilog(vi->channels));
  70. oggpack_write(opb,info->coupling_ang[i],ilog(vi->channels));
  71. }
  72. }else
  73. oggpack_write(opb,0,1);
  74. oggpack_write(opb,0,2); /* 2,3:reserved */
  75. /* we don't write the channel submappings if we only have one... */
  76. if(info->submaps>1){
  77. for(i=0;i<vi->channels;i++)
  78. oggpack_write(opb,info->chmuxlist[i],4);
  79. }
  80. for(i=0;i<info->submaps;i++){
  81. oggpack_write(opb,0,8); /* time submap unused */
  82. oggpack_write(opb,info->floorsubmap[i],8);
  83. oggpack_write(opb,info->residuesubmap[i],8);
  84. }
  85. }
  86. /* also responsible for range checking */
  87. static vorbis_info_mapping *mapping0_unpack(vorbis_info *vi,oggpack_buffer *opb){
  88. int i;
  89. vorbis_info_mapping0 *info=_ogg_calloc(1,sizeof(*info));
  90. codec_setup_info *ci=vi->codec_setup;
  91. memset(info,0,sizeof(*info));
  92. if(oggpack_read(opb,1))
  93. info->submaps=oggpack_read(opb,4)+1;
  94. else
  95. info->submaps=1;
  96. if(oggpack_read(opb,1)){
  97. info->coupling_steps=oggpack_read(opb,8)+1;
  98. for(i=0;i<info->coupling_steps;i++){
  99. int testM=info->coupling_mag[i]=oggpack_read(opb,ilog(vi->channels));
  100. int testA=info->coupling_ang[i]=oggpack_read(opb,ilog(vi->channels));
  101. if(testM<0 ||
  102. testA<0 ||
  103. testM==testA ||
  104. testM>=vi->channels ||
  105. testA>=vi->channels) goto err_out;
  106. }
  107. }
  108. if(oggpack_read(opb,2)>0)goto err_out; /* 2,3:reserved */
  109. if(info->submaps>1){
  110. for(i=0;i<vi->channels;i++){
  111. info->chmuxlist[i]=oggpack_read(opb,4);
  112. if(info->chmuxlist[i]>=info->submaps)goto err_out;
  113. }
  114. }
  115. for(i=0;i<info->submaps;i++){
  116. oggpack_read(opb,8); /* time submap unused */
  117. info->floorsubmap[i]=oggpack_read(opb,8);
  118. if(info->floorsubmap[i]>=ci->floors)goto err_out;
  119. info->residuesubmap[i]=oggpack_read(opb,8);
  120. if(info->residuesubmap[i]>=ci->residues)goto err_out;
  121. }
  122. return info;
  123. err_out:
  124. mapping0_free_info(info);
  125. return(NULL);
  126. }
  127. #include "os.h"
  128. #include "lpc.h"
  129. #include "lsp.h"
  130. #include "envelope.h"
  131. #include "mdct.h"
  132. #include "psy.h"
  133. #include "scales.h"
  134. #if 0
  135. static long seq=0;
  136. static ogg_int64_t total=0;
  137. static float FLOOR1_fromdB_LOOKUP[256]={
  138. 1.0649863e-07F, 1.1341951e-07F, 1.2079015e-07F, 1.2863978e-07F,
  139. 1.3699951e-07F, 1.4590251e-07F, 1.5538408e-07F, 1.6548181e-07F,
  140. 1.7623575e-07F, 1.8768855e-07F, 1.9988561e-07F, 2.128753e-07F,
  141. 2.2670913e-07F, 2.4144197e-07F, 2.5713223e-07F, 2.7384213e-07F,
  142. 2.9163793e-07F, 3.1059021e-07F, 3.3077411e-07F, 3.5226968e-07F,
  143. 3.7516214e-07F, 3.9954229e-07F, 4.2550680e-07F, 4.5315863e-07F,
  144. 4.8260743e-07F, 5.1396998e-07F, 5.4737065e-07F, 5.8294187e-07F,
  145. 6.2082472e-07F, 6.6116941e-07F, 7.0413592e-07F, 7.4989464e-07F,
  146. 7.9862701e-07F, 8.5052630e-07F, 9.0579828e-07F, 9.6466216e-07F,
  147. 1.0273513e-06F, 1.0941144e-06F, 1.1652161e-06F, 1.2409384e-06F,
  148. 1.3215816e-06F, 1.4074654e-06F, 1.4989305e-06F, 1.5963394e-06F,
  149. 1.7000785e-06F, 1.8105592e-06F, 1.9282195e-06F, 2.0535261e-06F,
  150. 2.1869758e-06F, 2.3290978e-06F, 2.4804557e-06F, 2.6416497e-06F,
  151. 2.8133190e-06F, 2.9961443e-06F, 3.1908506e-06F, 3.3982101e-06F,
  152. 3.6190449e-06F, 3.8542308e-06F, 4.1047004e-06F, 4.3714470e-06F,
  153. 4.6555282e-06F, 4.9580707e-06F, 5.2802740e-06F, 5.6234160e-06F,
  154. 5.9888572e-06F, 6.3780469e-06F, 6.7925283e-06F, 7.2339451e-06F,
  155. 7.7040476e-06F, 8.2047000e-06F, 8.7378876e-06F, 9.3057248e-06F,
  156. 9.9104632e-06F, 1.0554501e-05F, 1.1240392e-05F, 1.1970856e-05F,
  157. 1.2748789e-05F, 1.3577278e-05F, 1.4459606e-05F, 1.5399272e-05F,
  158. 1.6400004e-05F, 1.7465768e-05F, 1.8600792e-05F, 1.9809576e-05F,
  159. 2.1096914e-05F, 2.2467911e-05F, 2.3928002e-05F, 2.5482978e-05F,
  160. 2.7139006e-05F, 2.8902651e-05F, 3.0780908e-05F, 3.2781225e-05F,
  161. 3.4911534e-05F, 3.7180282e-05F, 3.9596466e-05F, 4.2169667e-05F,
  162. 4.4910090e-05F, 4.7828601e-05F, 5.0936773e-05F, 5.4246931e-05F,
  163. 5.7772202e-05F, 6.1526565e-05F, 6.5524908e-05F, 6.9783085e-05F,
  164. 7.4317983e-05F, 7.9147585e-05F, 8.4291040e-05F, 8.9768747e-05F,
  165. 9.5602426e-05F, 0.00010181521F, 0.00010843174F, 0.00011547824F,
  166. 0.00012298267F, 0.00013097477F, 0.00013948625F, 0.00014855085F,
  167. 0.00015820453F, 0.00016848555F, 0.00017943469F, 0.00019109536F,
  168. 0.00020351382F, 0.00021673929F, 0.00023082423F, 0.00024582449F,
  169. 0.00026179955F, 0.00027881276F, 0.00029693158F, 0.00031622787F,
  170. 0.00033677814F, 0.00035866388F, 0.00038197188F, 0.00040679456F,
  171. 0.00043323036F, 0.00046138411F, 0.00049136745F, 0.00052329927F,
  172. 0.00055730621F, 0.00059352311F, 0.00063209358F, 0.00067317058F,
  173. 0.00071691700F, 0.00076350630F, 0.00081312324F, 0.00086596457F,
  174. 0.00092223983F, 0.00098217216F, 0.0010459992F, 0.0011139742F,
  175. 0.0011863665F, 0.0012634633F, 0.0013455702F, 0.0014330129F,
  176. 0.0015261382F, 0.0016253153F, 0.0017309374F, 0.0018434235F,
  177. 0.0019632195F, 0.0020908006F, 0.0022266726F, 0.0023713743F,
  178. 0.0025254795F, 0.0026895994F, 0.0028643847F, 0.0030505286F,
  179. 0.0032487691F, 0.0034598925F, 0.0036847358F, 0.0039241906F,
  180. 0.0041792066F, 0.0044507950F, 0.0047400328F, 0.0050480668F,
  181. 0.0053761186F, 0.0057254891F, 0.0060975636F, 0.0064938176F,
  182. 0.0069158225F, 0.0073652516F, 0.0078438871F, 0.0083536271F,
  183. 0.0088964928F, 0.009474637F, 0.010090352F, 0.010746080F,
  184. 0.011444421F, 0.012188144F, 0.012980198F, 0.013823725F,
  185. 0.014722068F, 0.015678791F, 0.016697687F, 0.017782797F,
  186. 0.018938423F, 0.020169149F, 0.021479854F, 0.022875735F,
  187. 0.024362330F, 0.025945531F, 0.027631618F, 0.029427276F,
  188. 0.031339626F, 0.033376252F, 0.035545228F, 0.037855157F,
  189. 0.040315199F, 0.042935108F, 0.045725273F, 0.048696758F,
  190. 0.051861348F, 0.055231591F, 0.058820850F, 0.062643361F,
  191. 0.066714279F, 0.071049749F, 0.075666962F, 0.080584227F,
  192. 0.085821044F, 0.091398179F, 0.097337747F, 0.10366330F,
  193. 0.11039993F, 0.11757434F, 0.12521498F, 0.13335215F,
  194. 0.14201813F, 0.15124727F, 0.16107617F, 0.17154380F,
  195. 0.18269168F, 0.19456402F, 0.20720788F, 0.22067342F,
  196. 0.23501402F, 0.25028656F, 0.26655159F, 0.28387361F,
  197. 0.30232132F, 0.32196786F, 0.34289114F, 0.36517414F,
  198. 0.38890521F, 0.41417847F, 0.44109412F, 0.46975890F,
  199. 0.50028648F, 0.53279791F, 0.56742212F, 0.60429640F,
  200. 0.64356699F, 0.68538959F, 0.72993007F, 0.77736504F,
  201. 0.82788260F, 0.88168307F, 0.9389798F, 1.F,
  202. };
  203. #endif
  204. static int mapping0_forward(vorbis_block *vb){
  205. vorbis_dsp_state *vd=vb->vd;
  206. vorbis_info *vi=vd->vi;
  207. codec_setup_info *ci=vi->codec_setup;
  208. private_state *b=vb->vd->backend_state;
  209. vorbis_block_internal *vbi=(vorbis_block_internal *)vb->internal;
  210. int n=vb->pcmend;
  211. int i,j,k;
  212. int *nonzero = alloca(sizeof(*nonzero)*vi->channels);
  213. float **gmdct = _vorbis_block_alloc(vb,vi->channels*sizeof(*gmdct));
  214. int **ilogmaskch= _vorbis_block_alloc(vb,vi->channels*sizeof(*ilogmaskch));
  215. int ***floor_posts = _vorbis_block_alloc(vb,vi->channels*sizeof(*floor_posts));
  216. float global_ampmax=vbi->ampmax;
  217. float *local_ampmax=alloca(sizeof(*local_ampmax)*vi->channels);
  218. int blocktype=vbi->blocktype;
  219. int modenumber=vb->W;
  220. vorbis_info_mapping0 *info=ci->map_param[modenumber];
  221. vorbis_look_psy *psy_look=
  222. b->psy+blocktype+(vb->W?2:0);
  223. vb->mode=modenumber;
  224. for(i=0;i<vi->channels;i++){
  225. float scale=4.f/n;
  226. float scale_dB;
  227. float *pcm =vb->pcm[i];
  228. float *logfft =pcm;
  229. gmdct[i]=_vorbis_block_alloc(vb,n/2*sizeof(**gmdct));
  230. scale_dB=todB(&scale) + .345; /* + .345 is a hack; the original
  231. todB estimation used on IEEE 754
  232. compliant machines had a bug that
  233. returned dB values about a third
  234. of a decibel too high. The bug
  235. was harmless because tunings
  236. implicitly took that into
  237. account. However, fixing the bug
  238. in the estimator requires
  239. changing all the tunings as well.
  240. For now, it's easier to sync
  241. things back up here, and
  242. recalibrate the tunings in the
  243. next major model upgrade. */
  244. #if 0
  245. if(vi->channels==2){
  246. if(i==0)
  247. _analysis_output("pcmL",seq,pcm,n,0,0,total-n/2);
  248. else
  249. _analysis_output("pcmR",seq,pcm,n,0,0,total-n/2);
  250. }else{
  251. _analysis_output("pcm",seq,pcm,n,0,0,total-n/2);
  252. }
  253. #endif
  254. /* window the PCM data */
  255. _vorbis_apply_window(pcm,b->window,ci->blocksizes,vb->lW,vb->W,vb->nW);
  256. #if 0
  257. if(vi->channels==2){
  258. if(i==0)
  259. _analysis_output("windowedL",seq,pcm,n,0,0,total-n/2);
  260. else
  261. _analysis_output("windowedR",seq,pcm,n,0,0,total-n/2);
  262. }else{
  263. _analysis_output("windowed",seq,pcm,n,0,0,total-n/2);
  264. }
  265. #endif
  266. /* transform the PCM data */
  267. /* only MDCT right now.... */
  268. mdct_forward(b->transform[vb->W][0],pcm,gmdct[i]);
  269. /* FFT yields more accurate tonal estimation (not phase sensitive) */
  270. drft_forward(&b->fft_look[vb->W],pcm);
  271. logfft[0]=scale_dB+todB(pcm) + .345; /* + .345 is a hack; the
  272. original todB estimation used on
  273. IEEE 754 compliant machines had a
  274. bug that returned dB values about
  275. a third of a decibel too high.
  276. The bug was harmless because
  277. tunings implicitly took that into
  278. account. However, fixing the bug
  279. in the estimator requires
  280. changing all the tunings as well.
  281. For now, it's easier to sync
  282. things back up here, and
  283. recalibrate the tunings in the
  284. next major model upgrade. */
  285. local_ampmax[i]=logfft[0];
  286. for(j=1;j<n-1;j+=2){
  287. float temp=pcm[j]*pcm[j]+pcm[j+1]*pcm[j+1];
  288. temp=logfft[(j+1)>>1]=scale_dB+.5f*todB(&temp) + .345; /* +
  289. .345 is a hack; the original todB
  290. estimation used on IEEE 754
  291. compliant machines had a bug that
  292. returned dB values about a third
  293. of a decibel too high. The bug
  294. was harmless because tunings
  295. implicitly took that into
  296. account. However, fixing the bug
  297. in the estimator requires
  298. changing all the tunings as well.
  299. For now, it's easier to sync
  300. things back up here, and
  301. recalibrate the tunings in the
  302. next major model upgrade. */
  303. if(temp>local_ampmax[i])local_ampmax[i]=temp;
  304. }
  305. if(local_ampmax[i]>0.f)local_ampmax[i]=0.f;
  306. if(local_ampmax[i]>global_ampmax)global_ampmax=local_ampmax[i];
  307. #if 0
  308. if(vi->channels==2){
  309. if(i==0){
  310. _analysis_output("fftL",seq,logfft,n/2,1,0,0);
  311. }else{
  312. _analysis_output("fftR",seq,logfft,n/2,1,0,0);
  313. }
  314. }else{
  315. _analysis_output("fft",seq,logfft,n/2,1,0,0);
  316. }
  317. #endif
  318. }
  319. {
  320. float *noise = _vorbis_block_alloc(vb,n/2*sizeof(*noise));
  321. float *tone = _vorbis_block_alloc(vb,n/2*sizeof(*tone));
  322. for(i=0;i<vi->channels;i++){
  323. /* the encoder setup assumes that all the modes used by any
  324. specific bitrate tweaking use the same floor */
  325. int submap=info->chmuxlist[i];
  326. /* the following makes things clearer to *me* anyway */
  327. float *mdct =gmdct[i];
  328. float *logfft =vb->pcm[i];
  329. float *logmdct =logfft+n/2;
  330. float *logmask =logfft;
  331. vb->mode=modenumber;
  332. floor_posts[i]=_vorbis_block_alloc(vb,PACKETBLOBS*sizeof(**floor_posts));
  333. memset(floor_posts[i],0,sizeof(**floor_posts)*PACKETBLOBS);
  334. for(j=0;j<n/2;j++)
  335. logmdct[j]=todB(mdct+j) + .345; /* + .345 is a hack; the original
  336. todB estimation used on IEEE 754
  337. compliant machines had a bug that
  338. returned dB values about a third
  339. of a decibel too high. The bug
  340. was harmless because tunings
  341. implicitly took that into
  342. account. However, fixing the bug
  343. in the estimator requires
  344. changing all the tunings as well.
  345. For now, it's easier to sync
  346. things back up here, and
  347. recalibrate the tunings in the
  348. next major model upgrade. */
  349. #if 0
  350. if(vi->channels==2){
  351. if(i==0)
  352. _analysis_output("mdctL",seq,logmdct,n/2,1,0,0);
  353. else
  354. _analysis_output("mdctR",seq,logmdct,n/2,1,0,0);
  355. }else{
  356. _analysis_output("mdct",seq,logmdct,n/2,1,0,0);
  357. }
  358. #endif
  359. /* first step; noise masking. Not only does 'noise masking'
  360. give us curves from which we can decide how much resolution
  361. to give noise parts of the spectrum, it also implicitly hands
  362. us a tonality estimate (the larger the value in the
  363. 'noise_depth' vector, the more tonal that area is) */
  364. _vp_noisemask(psy_look,
  365. logmdct,
  366. noise); /* noise does not have by-frequency offset
  367. bias applied yet */
  368. #if 0
  369. if(vi->channels==2){
  370. if(i==0)
  371. _analysis_output("noiseL",seq,noise,n/2,1,0,0);
  372. else
  373. _analysis_output("noiseR",seq,noise,n/2,1,0,0);
  374. }else{
  375. _analysis_output("noise",seq,noise,n/2,1,0,0);
  376. }
  377. #endif
  378. /* second step: 'all the other crap'; all the stuff that isn't
  379. computed/fit for bitrate management goes in the second psy
  380. vector. This includes tone masking, peak limiting and ATH */
  381. _vp_tonemask(psy_look,
  382. logfft,
  383. tone,
  384. global_ampmax,
  385. local_ampmax[i]);
  386. #if 0
  387. if(vi->channels==2){
  388. if(i==0)
  389. _analysis_output("toneL",seq,tone,n/2,1,0,0);
  390. else
  391. _analysis_output("toneR",seq,tone,n/2,1,0,0);
  392. }else{
  393. _analysis_output("tone",seq,tone,n/2,1,0,0);
  394. }
  395. #endif
  396. /* third step; we offset the noise vectors, overlay tone
  397. masking. We then do a floor1-specific line fit. If we're
  398. performing bitrate management, the line fit is performed
  399. multiple times for up/down tweakage on demand. */
  400. #if 0
  401. {
  402. float aotuv[psy_look->n];
  403. #endif
  404. _vp_offset_and_mix(psy_look,
  405. noise,
  406. tone,
  407. 1,
  408. logmask,
  409. mdct,
  410. logmdct);
  411. #if 0
  412. if(vi->channels==2){
  413. if(i==0)
  414. _analysis_output("aotuvM1_L",seq,aotuv,psy_look->n,1,1,0);
  415. else
  416. _analysis_output("aotuvM1_R",seq,aotuv,psy_look->n,1,1,0);
  417. }else{
  418. _analysis_output("aotuvM1",seq,aotuv,psy_look->n,1,1,0);
  419. }
  420. }
  421. #endif
  422. #if 0
  423. if(vi->channels==2){
  424. if(i==0)
  425. _analysis_output("mask1L",seq,logmask,n/2,1,0,0);
  426. else
  427. _analysis_output("mask1R",seq,logmask,n/2,1,0,0);
  428. }else{
  429. _analysis_output("mask1",seq,logmask,n/2,1,0,0);
  430. }
  431. #endif
  432. /* this algorithm is hardwired to floor 1 for now; abort out if
  433. we're *not* floor1. This won't happen unless someone has
  434. broken the encode setup lib. Guard it anyway. */
  435. if(ci->floor_type[info->floorsubmap[submap]]!=1)return(-1);
  436. floor_posts[i][PACKETBLOBS/2]=
  437. floor1_fit(vb,b->flr[info->floorsubmap[submap]],
  438. logmdct,
  439. logmask);
  440. /* are we managing bitrate? If so, perform two more fits for
  441. later rate tweaking (fits represent hi/lo) */
  442. if(vorbis_bitrate_managed(vb) && floor_posts[i][PACKETBLOBS/2]){
  443. /* higher rate by way of lower noise curve */
  444. _vp_offset_and_mix(psy_look,
  445. noise,
  446. tone,
  447. 2,
  448. logmask,
  449. mdct,
  450. logmdct);
  451. #if 0
  452. if(vi->channels==2){
  453. if(i==0)
  454. _analysis_output("mask2L",seq,logmask,n/2,1,0,0);
  455. else
  456. _analysis_output("mask2R",seq,logmask,n/2,1,0,0);
  457. }else{
  458. _analysis_output("mask2",seq,logmask,n/2,1,0,0);
  459. }
  460. #endif
  461. floor_posts[i][PACKETBLOBS-1]=
  462. floor1_fit(vb,b->flr[info->floorsubmap[submap]],
  463. logmdct,
  464. logmask);
  465. /* lower rate by way of higher noise curve */
  466. _vp_offset_and_mix(psy_look,
  467. noise,
  468. tone,
  469. 0,
  470. logmask,
  471. mdct,
  472. logmdct);
  473. #if 0
  474. if(vi->channels==2){
  475. if(i==0)
  476. _analysis_output("mask0L",seq,logmask,n/2,1,0,0);
  477. else
  478. _analysis_output("mask0R",seq,logmask,n/2,1,0,0);
  479. }else{
  480. _analysis_output("mask0",seq,logmask,n/2,1,0,0);
  481. }
  482. #endif
  483. floor_posts[i][0]=
  484. floor1_fit(vb,b->flr[info->floorsubmap[submap]],
  485. logmdct,
  486. logmask);
  487. /* we also interpolate a range of intermediate curves for
  488. intermediate rates */
  489. for(k=1;k<PACKETBLOBS/2;k++)
  490. floor_posts[i][k]=
  491. floor1_interpolate_fit(vb,b->flr[info->floorsubmap[submap]],
  492. floor_posts[i][0],
  493. floor_posts[i][PACKETBLOBS/2],
  494. k*65536/(PACKETBLOBS/2));
  495. for(k=PACKETBLOBS/2+1;k<PACKETBLOBS-1;k++)
  496. floor_posts[i][k]=
  497. floor1_interpolate_fit(vb,b->flr[info->floorsubmap[submap]],
  498. floor_posts[i][PACKETBLOBS/2],
  499. floor_posts[i][PACKETBLOBS-1],
  500. (k-PACKETBLOBS/2)*65536/(PACKETBLOBS/2));
  501. }
  502. }
  503. }
  504. vbi->ampmax=global_ampmax;
  505. /*
  506. the next phases are performed once for vbr-only and PACKETBLOB
  507. times for bitrate managed modes.
  508. 1) encode actual mode being used
  509. 2) encode the floor for each channel, compute coded mask curve/res
  510. 3) normalize and couple.
  511. 4) encode residue
  512. 5) save packet bytes to the packetblob vector
  513. */
  514. /* iterate over the many masking curve fits we've created */
  515. {
  516. float **res_bundle=alloca(sizeof(*res_bundle)*vi->channels);
  517. float **couple_bundle=alloca(sizeof(*couple_bundle)*vi->channels);
  518. int *zerobundle=alloca(sizeof(*zerobundle)*vi->channels);
  519. int **sortindex=alloca(sizeof(*sortindex)*vi->channels);
  520. float **mag_memo=NULL;
  521. int **mag_sort=NULL;
  522. if(info->coupling_steps){
  523. mag_memo=_vp_quantize_couple_memo(vb,
  524. &ci->psy_g_param,
  525. psy_look,
  526. info,
  527. gmdct);
  528. mag_sort=_vp_quantize_couple_sort(vb,
  529. psy_look,
  530. info,
  531. mag_memo);
  532. hf_reduction(&ci->psy_g_param,
  533. psy_look,
  534. info,
  535. mag_memo);
  536. }
  537. memset(sortindex,0,sizeof(*sortindex)*vi->channels);
  538. if(psy_look->vi->normal_channel_p){
  539. for(i=0;i<vi->channels;i++){
  540. float *mdct =gmdct[i];
  541. sortindex[i]=alloca(sizeof(**sortindex)*n/2);
  542. _vp_noise_normalize_sort(psy_look,mdct,sortindex[i]);
  543. }
  544. }
  545. for(k=(vorbis_bitrate_managed(vb)?0:PACKETBLOBS/2);
  546. k<=(vorbis_bitrate_managed(vb)?PACKETBLOBS-1:PACKETBLOBS/2);
  547. k++){
  548. oggpack_buffer *opb=vbi->packetblob[k];
  549. /* start out our new packet blob with packet type and mode */
  550. /* Encode the packet type */
  551. oggpack_write(opb,0,1);
  552. /* Encode the modenumber */
  553. /* Encode frame mode, pre,post windowsize, then dispatch */
  554. oggpack_write(opb,modenumber,b->modebits);
  555. if(vb->W){
  556. oggpack_write(opb,vb->lW,1);
  557. oggpack_write(opb,vb->nW,1);
  558. }
  559. /* encode floor, compute masking curve, sep out residue */
  560. for(i=0;i<vi->channels;i++){
  561. int submap=info->chmuxlist[i];
  562. float *mdct =gmdct[i];
  563. float *res =vb->pcm[i];
  564. int *ilogmask=ilogmaskch[i]=
  565. _vorbis_block_alloc(vb,n/2*sizeof(**gmdct));
  566. nonzero[i]=floor1_encode(opb,vb,b->flr[info->floorsubmap[submap]],
  567. floor_posts[i][k],
  568. ilogmask);
  569. #if 0
  570. {
  571. char buf[80];
  572. sprintf(buf,"maskI%c%d",i?'R':'L',k);
  573. float work[n/2];
  574. for(j=0;j<n/2;j++)
  575. work[j]=FLOOR1_fromdB_LOOKUP[ilogmask[j]];
  576. _analysis_output(buf,seq,work,n/2,1,1,0);
  577. }
  578. #endif
  579. _vp_remove_floor(psy_look,
  580. mdct,
  581. ilogmask,
  582. res,
  583. ci->psy_g_param.sliding_lowpass[vb->W][k]);
  584. _vp_noise_normalize(psy_look,res,res+n/2,sortindex[i]);
  585. #if 0
  586. {
  587. char buf[80];
  588. float work[n/2];
  589. for(j=0;j<n/2;j++)
  590. work[j]=FLOOR1_fromdB_LOOKUP[ilogmask[j]]*(res+n/2)[j];
  591. sprintf(buf,"resI%c%d",i?'R':'L',k);
  592. _analysis_output(buf,seq,work,n/2,1,1,0);
  593. }
  594. #endif
  595. }
  596. /* our iteration is now based on masking curve, not prequant and
  597. coupling. Only one prequant/coupling step */
  598. /* quantize/couple */
  599. /* incomplete implementation that assumes the tree is all depth
  600. one, or no tree at all */
  601. if(info->coupling_steps){
  602. _vp_couple(k,
  603. &ci->psy_g_param,
  604. psy_look,
  605. info,
  606. vb->pcm,
  607. mag_memo,
  608. mag_sort,
  609. ilogmaskch,
  610. nonzero,
  611. ci->psy_g_param.sliding_lowpass[vb->W][k]);
  612. }
  613. /* classify and encode by submap */
  614. for(i=0;i<info->submaps;i++){
  615. int ch_in_bundle=0;
  616. long **classifications;
  617. int resnum=info->residuesubmap[i];
  618. for(j=0;j<vi->channels;j++){
  619. if(info->chmuxlist[j]==i){
  620. zerobundle[ch_in_bundle]=0;
  621. if(nonzero[j])zerobundle[ch_in_bundle]=1;
  622. res_bundle[ch_in_bundle]=vb->pcm[j];
  623. couple_bundle[ch_in_bundle++]=vb->pcm[j]+n/2;
  624. }
  625. }
  626. classifications=_residue_P[ci->residue_type[resnum]]->
  627. class(vb,b->residue[resnum],couple_bundle,zerobundle,ch_in_bundle);
  628. /* couple_bundle is destructively overwritten by
  629. the class function if some but not all of the channels are
  630. marked as silence; build a fresh copy */
  631. ch_in_bundle=0;
  632. for(j=0;j<vi->channels;j++)
  633. if(info->chmuxlist[j]==i)
  634. couple_bundle[ch_in_bundle++]=vb->pcm[j]+n/2;
  635. _residue_P[ci->residue_type[resnum]]->
  636. forward(opb,vb,b->residue[resnum],
  637. couple_bundle,NULL,zerobundle,ch_in_bundle,classifications);
  638. }
  639. /* ok, done encoding. Next protopacket. */
  640. }
  641. }
  642. #if 0
  643. seq++;
  644. total+=ci->blocksizes[vb->W]/4+ci->blocksizes[vb->nW]/4;
  645. #endif
  646. return(0);
  647. }
  648. static int mapping0_inverse(vorbis_block *vb,vorbis_info_mapping *l){
  649. vorbis_dsp_state *vd=vb->vd;
  650. vorbis_info *vi=vd->vi;
  651. codec_setup_info *ci=vi->codec_setup;
  652. private_state *b=vd->backend_state;
  653. vorbis_info_mapping0 *info=(vorbis_info_mapping0 *)l;
  654. int i,j;
  655. long n=vb->pcmend=ci->blocksizes[vb->W];
  656. float **pcmbundle=alloca(sizeof(*pcmbundle)*vi->channels);
  657. int *zerobundle=alloca(sizeof(*zerobundle)*vi->channels);
  658. int *nonzero =alloca(sizeof(*nonzero)*vi->channels);
  659. void **floormemo=alloca(sizeof(*floormemo)*vi->channels);
  660. /* recover the spectral envelope; store it in the PCM vector for now */
  661. for(i=0;i<vi->channels;i++){
  662. int submap=info->chmuxlist[i];
  663. floormemo[i]=_floor_P[ci->floor_type[info->floorsubmap[submap]]]->
  664. inverse1(vb,b->flr[info->floorsubmap[submap]]);
  665. if(floormemo[i])
  666. nonzero[i]=1;
  667. else
  668. nonzero[i]=0;
  669. memset(vb->pcm[i],0,sizeof(*vb->pcm[i])*n/2);
  670. }
  671. /* channel coupling can 'dirty' the nonzero listing */
  672. for(i=0;i<info->coupling_steps;i++){
  673. if(nonzero[info->coupling_mag[i]] ||
  674. nonzero[info->coupling_ang[i]]){
  675. nonzero[info->coupling_mag[i]]=1;
  676. nonzero[info->coupling_ang[i]]=1;
  677. }
  678. }
  679. /* recover the residue into our working vectors */
  680. for(i=0;i<info->submaps;i++){
  681. int ch_in_bundle=0;
  682. for(j=0;j<vi->channels;j++){
  683. if(info->chmuxlist[j]==i){
  684. if(nonzero[j])
  685. zerobundle[ch_in_bundle]=1;
  686. else
  687. zerobundle[ch_in_bundle]=0;
  688. pcmbundle[ch_in_bundle++]=vb->pcm[j];
  689. }
  690. }
  691. _residue_P[ci->residue_type[info->residuesubmap[i]]]->
  692. inverse(vb,b->residue[info->residuesubmap[i]],
  693. pcmbundle,zerobundle,ch_in_bundle);
  694. }
  695. /* channel coupling */
  696. for(i=info->coupling_steps-1;i>=0;i--){
  697. float *pcmM=vb->pcm[info->coupling_mag[i]];
  698. float *pcmA=vb->pcm[info->coupling_ang[i]];
  699. for(j=0;j<n/2;j++){
  700. float mag=pcmM[j];
  701. float ang=pcmA[j];
  702. if(mag>0)
  703. if(ang>0){
  704. pcmM[j]=mag;
  705. pcmA[j]=mag-ang;
  706. }else{
  707. pcmA[j]=mag;
  708. pcmM[j]=mag+ang;
  709. }
  710. else
  711. if(ang>0){
  712. pcmM[j]=mag;
  713. pcmA[j]=mag+ang;
  714. }else{
  715. pcmA[j]=mag;
  716. pcmM[j]=mag-ang;
  717. }
  718. }
  719. }
  720. /* compute and apply spectral envelope */
  721. for(i=0;i<vi->channels;i++){
  722. float *pcm=vb->pcm[i];
  723. int submap=info->chmuxlist[i];
  724. _floor_P[ci->floor_type[info->floorsubmap[submap]]]->
  725. inverse2(vb,b->flr[info->floorsubmap[submap]],
  726. floormemo[i],pcm);
  727. }
  728. /* transform the PCM data; takes PCM vector, vb; modifies PCM vector */
  729. /* only MDCT right now.... */
  730. for(i=0;i<vi->channels;i++){
  731. float *pcm=vb->pcm[i];
  732. mdct_backward(b->transform[vb->W][0],pcm,pcm);
  733. }
  734. /* all done! */
  735. return(0);
  736. }
  737. /* export hooks */
  738. const vorbis_func_mapping mapping0_exportbundle={
  739. &mapping0_pack,
  740. &mapping0_unpack,
  741. &mapping0_free_info,
  742. &mapping0_forward,
  743. &mapping0_inverse
  744. };